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Slowing down and stretching DNA with an electrically tunable nanopore in a p-n semiconductor membrane

机译:在p-n半导体膜中通过电可调纳米孔减慢并拉伸DNA

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We have studied single-stranded DNA translocation through a semiconductor membrane consisting of doped p and n layers of Si forming a pn-junction. Using Brownian dynamics simulations of the biomolecule in the self-consistent membraneelectrolyte potential obtained from the PoissonNernstPlanck model, we show that while polymer length is extended more than when its motion is constricted only by the physical confinement of the nanopore. The biomolecule elongation is particularly dramatic on the n-side of the membrane where the lateral membrane electric field restricts (focuses) the biomolecule motion more than on the p-side. The latter effect makes our membrane a solid-state analog of the α-hemolysin biochannel. The results indicate that the tunable local electric field inside the membrane can effectively control dynamics of a DNA in the channel to either momentarily trap, slow down or allow the biomolecule to translocate at will.
机译:我们已经研究了通过半导体膜的单链DNA易位,该半导体膜由形成pn结的Si的p和n掺杂层组成。使用从PoissonNernstPlanck模型获得的自洽膜电解质电势中生物分子的布朗动力学模拟,我们显示,尽管聚合物的长度比仅通过纳米孔的物理限制而运动的时候长,但聚合物的长度却更多。生物分子的伸长在膜的n侧尤为明显,其中横向膜电场比p侧更能限制(聚焦)生物分子的运动。后一种效应使我们的膜成为α-溶血素生物通道的固态类似物。结果表明,膜内部的可调局部电场可以有效地控制通道中DNA的动力学,以瞬时捕获,减慢速度或让生物分子随意转移。

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